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基于无金属小分子的压电能量收集器。

Metal-free small molecule-based piezoelectric energy harvesters.

作者信息

Sahoo Supriya, Deka Nilotpal, Panday Rishukumar, Boomishankar Ramamoorthy

机构信息

Department of Chemistry and Centre for Energy Science, Indian Institute of Science Education and Research (IISER), Pune, Dr Homi Bhabha Road, Pune - 411008, India.

出版信息

Chem Commun (Camb). 2024 Oct 10;60(82):11655-11672. doi: 10.1039/d4cc03939d.

Abstract

Organic and metal-free molecules with piezoelectric and ferroelectric properties have gained wide interest for their applications in the domain of mechanical energy harvesting due to their desirable properties such as light weight, thermal stability, mechanical flexibility, feasibility to achieve high Curie temperatures, and ease of synthesis. However, the understanding and design of these materials for piezoelectric energy harvesting applications is still in its early stages. This review paper presents a comprehensive overview of the fundamental characterization of piezoelectricity for a range of organic ferro- and piezoelectric materials and their composites. It also discusses the limitations of traditional piezoelectric materials and highlights the advantages of organic materials in this area in the introduction part. In addition, the paper provides a detailed description of peptide-based and other biomolecular piezoelectric materials as a bio-friendly alternative to current materials. This perspective aims to guide researchers in designing functional organic materials and composites for practical mechanical energy harvesting applications and to highlight current limitations and future perspectives in this emerging area of research.

摘要

具有压电和铁电特性的无有机和金属分子因其诸如重量轻、热稳定性、机械柔韧性、实现高居里温度的可行性以及易于合成等理想特性,在机械能收集领域的应用中引起了广泛关注。然而,用于压电能量收集应用的这些材料的理解和设计仍处于早期阶段。这篇综述文章全面概述了一系列有机铁电和压电材料及其复合材料的压电基本特性。它还在引言部分讨论了传统压电材料的局限性,并强调了有机材料在该领域的优势。此外,本文详细描述了基于肽的和其他生物分子压电材料,作为当前材料的生物友好替代品。这一观点旨在指导研究人员设计用于实际机械能收集应用的功能性有机材料和复合材料,并突出这一新兴研究领域当前的局限性和未来前景。

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